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Impact of the Use of Nanoparticles on Electric Field Distribution during Irreversible Electroporation Treatments: Can the Lesion be Enhanced Beyond IRE Margin?

机译:纳米颗粒在不可逆电穿孔处理期间使用纳米颗粒对电场分布的影响:损伤是否可以超越IRE裕度?

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Irreversible electroporation (IRE) is the phenomenon in which cell transmembrane potential is increased by exposure to short, high intensity electric fields. When a certain threshold is reached, damage to the cell and homeostasis disruption is too great for recovery and cell death occurs. IRE has gained a lot of attention as a cancer ablation technique to treat otherwise inoperable tumors due to its nonthermal mechanism to induce cell death. This characteristic makes it particularly attractive to treat pancreatic tumors since it is often claimed that in contrast with thermal ablation techniques, irreversible electroporation decreases damage to large blood vessels, such as the superior mesenteric artery, and neighboring bile ducts. Furthermore, recent studies on the use of nanoparticles with IRE show great potential for an increased selectivity to ablate cancer cells while sparing a higher percentage of healthy tissue. The goal of the study presented here is to numerically analyze the relevance of such increase in treated volume in a 3D in vitro tumor model and how it compares to experimental results and its translation to the clinical setting. A 3D tumor model was implemented for numerical simulations to make predictions of lesion enhancement after IRE treatment with nanoparticles (NPs). Results were compared to those obtained through in vitro experiments in 3D hydrogel tumor constructs. These comparisons indicate that a lesion volume increase can be obtained through enhanced sensitization of cancer cells beyond IRE margin. This can be clinically significant for the use of ERE to treat tumors with intricate morphologies such as those with infiltrative fingering margins, and those near or engulfing critical structures.
机译:不可逆的电穿孔(IRE)是通过暴露于短,高强度电场而增加细胞跨膜电位的现象。当达到一定阈值时,对细胞和稳态破坏的破坏对于恢复和细胞死亡来说太大。由于其非热机制以诱导细胞死亡,IRE作为癌症烧蚀技术,以治疗其他肿瘤的癌症烧蚀技术得到了很多关注。这种特性使其特别有吸引力,从而常常要求与热烧蚀技术相比,不可逆电穿孔降低对大型血管的损伤,例如上肠道动脉和相邻的胆管。此外,最近关于使用乙型纳米颗粒的研究表明,在抑制更高百分比的健康组织的同时,对烧蚀癌细胞的选择性增加具有巨大的选择性。本研究的目的在于,以数值分析3D体外肿瘤模型中处理体积的增加的相关性以及如何将其与实验结果与其与临床环境的翻译进行比较。实施了3D肿瘤模型以进行数值模拟,以使纳米颗粒(NPS)治疗后病变增强预测。将结果与通过3D水凝胶肿瘤构建体中的体外实验获得的结果进行了比较。这些比较表明,通过增强癌细胞超出IS裕度的敏化性,可以获得病变体积增加。这对于使用ERE来治疗具有复杂形态的肿瘤,例如具有渗透指法的边缘的临床意义,以及近乎或吞没关键结构的那些。

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